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Model-based Heating and Handling Strategy for Pre-Assembled Hybrid Fibre-Reinforced Metal-Thermoplastic Preforms

机译:基于模型的预组装混合纤维增强金属-热塑性预成型件的加热和处理策略

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Handling plays a key role in automated processing of continuous fibre-reinforced thermoplastics (organo sheets). Challenges result from the properties and behaviour of the processed semi-finished products in heated state. These include the defined grasping, transport and release of flexible materials, the precise handling of sensitive textiles and the observation of processing temperatures for thin-walled semi-finished products.In the context of multi-material or hybrid lightweight components consisting of organo sheets and metallic parts, the joint consideration of component and process development not only enables cost-efficient lightweight design but also yields potentials regarding the automation-oriented processing of organo sheets. With regard to automated handling, the authors have shown that bringing the different materials together to a hybrid preform before heating leads to advantageous material behaviour. For example, metallic areas of the hybrid composite can serve as rigid support and gripping points which can be grasped by standard grippers.To make use of this approach in the context of thermoforming, an integrated heating and handling strategy is required for automated processing of hybrid preforms with inhomogeneous material thickness and varying material combinations. For this purpose, the preform-related heat transfer behaviour was modelled and empirically validated. Based on the results, it was possible to derive process windows depending on the material combination and layer structure. Finally, these findings were used to design heating and handling strategies for the processing of hybrid preforms.
机译:处理在连续纤维增强的热塑性塑料(有机片)的自动化处理中起着关键作用。挑战来自加热状态下加工的半成品的性能和行为。这些包括柔性材料的明确抓取,运输和释放,敏感纺织品的精确处理以及薄壁半成品的加工温度观察。金属零件,以及部件和工艺开发的共同考虑,不仅可以实现经济高效的轻量化设计,而且在有机片材的自动化加工方面也具有潜力。关于自动化处理,作者已经表明,在加热之前将不同的材料放到混合预成型坯中会产生有利的材料性能。例如,混合复合材料的金属区域可以用作刚性支撑和抓取点,可以由标准抓取器抓取。要在热成型的情况下使用此方法,需要集成的加热和处理策略来自动处理混合材料材料厚度不均匀且材料组合变化的瓶坯。为此,对瓶坯相关的传热行为进行了建模和经验验证。根据结果​​,可以根据材料组合和层结构得出处理窗口。最后,这些发现被用于设计加热和处理混合预成型件的加工策略。

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